Mini Pothanadu Antony, Dona Susan Baji, Shantikumar Nair, Dhamodaran Santhanagopalan
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Among the tested samples, [email protected] (0.5 indicates coating time in hours) exhibited the highest reversible capacity of 605 mAh g<sup>−1</sup>, nearly three times that of pristine LVO with an initial Coulombic efficiency of 87% upon chemical prelithiation. The rate capability studies revealed stable performance, with 78% capacity retention over 500 cycles at 10C. Electrochemical impedance spectroscopy reveals that the [email protected] electrode exhibits high Li-ion diffusivity, reduced interfacial layer resistance, and enhanced charge transfer kinetics. Ex situ surface chemical analysis confirms the formation of a stable solid–electrolyte interphase layer on [email protected]. Conformal Ppy coating on LVO is a promising strategy for developing high-performance LIB anode.</p>","PeriodicalId":132,"journal":{"name":"Batteries & Supercaps","volume":"9 4","pages":""},"PeriodicalIF":4.7000,"publicationDate":"2026-04-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Conformal and Nanoscale Poly(pyrrole) Coating on Li3VO4 Surface Enabling High Performance Lithium-Ion Batteries\",\"authors\":\"Mini Pothanadu Antony, Dona Susan Baji, Shantikumar Nair, Dhamodaran Santhanagopalan\",\"doi\":\"10.1002/batt.202500575\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Lithium vanadium oxide (Li<sub>3</sub>VO<sub>4</sub>) shows great promise as an anode for high-efficiency Li-ion batteries (LIBs). However, its application is hindered by poor electronic conductivity and high charge transfer resistance caused by a thick and unstable solid electrolyte interface layer. 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引用次数: 0
摘要
锂钒氧化物(Li3VO4)作为高效锂离子电池(LIBs)的阳极显示出巨大的前景。然而,由于固体电解质界面层较厚且不稳定,导致其电子导电性差,电荷转移电阻高,阻碍了其应用。本文报道了一种旨在提高高倍率长循环锂离子电池LVO阳极电化学性能的两步法。这包括水热合成结晶LVO,然后通过气相聚合得到聚吡咯(Ppy)的保形涂层。导电的Ppy层促进了电子传递,增强了锂离子的扩散,减轻了原始LVO的局限性。在测试样品中,[email protected](0.5表示涂层时间,单位为小时)表现出最高的605 mAh g−1的可逆容量,几乎是原始LVO的3倍,化学预锂化后的初始库仑效率为87%。速率性能研究表明,性能稳定,在10C下进行500次循环时,容量保持率为78%。电化学阻抗谱表明,[email protected]电极具有较高的锂离子扩散率,降低了界面层电阻,增强了电荷转移动力学。非原位表面化学分析证实在[email protected]上形成了稳定的固体-电解质间相层。在LVO表面涂覆保形Ppy是开发高性能锂离子电池阳极的一种很有前途的策略。
Conformal and Nanoscale Poly(pyrrole) Coating on Li3VO4 Surface Enabling High Performance Lithium-Ion Batteries
Lithium vanadium oxide (Li3VO4) shows great promise as an anode for high-efficiency Li-ion batteries (LIBs). However, its application is hindered by poor electronic conductivity and high charge transfer resistance caused by a thick and unstable solid electrolyte interface layer. A two-step approach aimed at improving the electrochemical performance of the LVO anode for high-rate and long-cycle LIBs is reported. This involves the hydrothermal synthesis of crystalline LVO, followed by a conformal coating of polypyrrole (Ppy) via vapor-phase polymerization. The conductive Ppy layer facilitates electron transport and enhances lithium-ion diffusion, mitigating the limitations of pristine LVO. Among the tested samples, [email protected] (0.5 indicates coating time in hours) exhibited the highest reversible capacity of 605 mAh g−1, nearly three times that of pristine LVO with an initial Coulombic efficiency of 87% upon chemical prelithiation. The rate capability studies revealed stable performance, with 78% capacity retention over 500 cycles at 10C. Electrochemical impedance spectroscopy reveals that the [email protected] electrode exhibits high Li-ion diffusivity, reduced interfacial layer resistance, and enhanced charge transfer kinetics. Ex situ surface chemical analysis confirms the formation of a stable solid–electrolyte interphase layer on [email protected]. Conformal Ppy coating on LVO is a promising strategy for developing high-performance LIB anode.
期刊介绍:
Electrochemical energy storage devices play a transformative role in our societies. They have allowed the emergence of portable electronics devices, have triggered the resurgence of electric transportation and constitute key components in smart power grids. Batteries & Supercaps publishes international high-impact experimental and theoretical research on the fundamentals and applications of electrochemical energy storage. We support the scientific community to advance energy efficiency and sustainability.